Senior Solution Architect & Functional Arch

Posted Yesterday
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Noida, Gautam Buddha Nagar, Uttar Pradesh, IND
Hybrid
Senior level
Information Technology • Database • Consulting
The Role
Lead product and solution architecture for AI-powered Accounts Payable (AP) capabilities. Own AI product vision and roadmap, design generative and agentic LLM solutions, architect scalable cloud deployments, guide data science and engineering teams, ensure compliance (SOX/GDPR), and drive client engagements and go-to-market. Mentor cross-functional teams and deliver production-grade IDP, NLP, and MLOps pipelines for AP automation and orchestration.
Summary Generated by Built In

Short Description-

We are seeking a seasoned AVP – AI Product Experience to own the design, build, and deployment of AI-powered product capabilities for the Accounts Payable domain. The role demands deep technical grounding in Generative AI, Agentic AI, and LLM engineering, combined with strong product leadership to translate AP process complexity into scalable, intelligent software solutions. The incumbent will work closely with engineering, data science, and client-facing teams to define and ship world-class AI experiences on EXL's Finance AI platform.


Description-

KEY RESPONSIBILITIES

Product Vision & Platform Strategy

  • Own end-to-end product vision and multi-year roadmap for AI-powered AP solutions: intelligent invoice processing, three-way matching, supplier onboarding, exception management, and payment orchestration.
  • Define product architecture and feature set for Generative AI and Agentic AI capabilities embedded within AP workflows, ensuring alignment with EXL's Finance AI platform strategy.
  • Participate in deep architectural discussions and design exercises to create world-class AP AI solutions, ensuring they are designed for successful deployment on cloud platforms (AWS, Azure, GCP).
  • Drive build-vs-buy-vs-partner decisions, evaluating AI frameworks and vendor ecosystems against in-house capability development.

Solution Design & AI Architecture

  • Design Generative AI solutions leveraging state-of-the-art models (GPT-4o, Claude, Llama 3) to automate AP-specific tasks such as invoice data extraction, PO matching, and vendor communication.
  • Architect agentic AI workflows for autonomous AP operations: self-healing exception agents, multi-step approval orchestration agents, and real-time supplier query resolution agents.
  • Translate complex AP business requirements into AI architectures, orchestration frameworks (LangChain, LangGraph, AutoGen, CrewAI), and scalable deployment pipelines (MLOps, MLflow).
  • Design NLP and Intelligent Document Processing (IDP) capabilities for structured and unstructured AP documents: invoices, POs, GRNs, contracts, and remittance advices.
  • Ensure AI solutions meet compliance, security, and scalability standards including SOX, GDPR, and enterprise data governance requirements.

Technical Leadership

  • Guide technical teams of data scientists, ML engineers, and software engineers in building, fine-tuning, and deploying LLMs and multimodal AI models for AP use cases.
  • Architect scalable, secure AI pipelines on cloud platforms; drive adoption of deep learning frameworks (PyTorch, TensorFlow) and LLM orchestration stacks (LangChain, LlamaIndex, LangGraph).
  • Stay current on advancements in Generative AI, agentic systems, NLP, and ML engineering; translate emerging trends into product features and competitive differentiation.
  • Drive engineering excellence: code quality standards, MLOps practices, model versioning, and production monitoring across AP AI models.

Client Engagement & Go-to-Market

  • Interact directly with client CTO, CPO, and Finance technology leaders to understand AP pain points, showcase EXL's AI capabilities, and co-create transformation roadmaps.
  • Lead client solutioning during first engagements: define scope, architect proof-of-concepts, and present AI use cases to both technical and business audiences.
  • Author and contribute to EXL customer-facing publications: whitepapers, workshops, demo environments, and proof-of-concept accelerators for AP AI.
  • Represent EXL at industry forums, analyst briefings (Gartner, Forrester), and RFP/RFI responses as the Finance AI product SME.
  • Build deep relationships with senior technical stakeholders at client organizations, enabling them to become AI advocates internally.

Product Management & Delivery

  • Define and maintain a prioritized product backlog with detailed PRDs, user stories, and acceptance criteria aligned to AP domain outcomes.
  • Establish product KPIs: straight-through processing (STP) rates, invoice auto-match accuracy, exception reduction, and cycle time improvements.
  • Capture and share best-practice knowledge across EXL's AI product and solutions architect communities.
  • Mentor a cross-functional team of product managers, solution architects, ML engineers, and finance SMEs.

QUALIFICATIONS

Education & Experience (14+ Years)

  • B.Tech or M.Tech in Computer Science, Software Engineering, Data Science, or related technical discipline.
  • 14–16 years of total experience, with at least 6–8 years in AI/ML product engineering and 8+ years in Finance technology with deep AP/P2P domain ownership.
  • 8+ years of hands-on experience in Generative AI and Large Language Models – finetuning LLMs, prompt engineering, and building with LLM orchestration frameworks (LangChain, LlamaIndex, RAGAS, LangGraph).
  • Hands-on experience with deep learning frameworks (PyTorch, TensorFlow) as evidenced by production deployments or public repositories.
  • Solid understanding of optimization techniques for training deep neural networks, regularization methods, and hyperparameter/fine-tuning for finance-specific models.
  • Strong experience in Agentic AI: Autonomous Agents, AutoGen, CrewAI, LangGraph workflow design; familiarity with NVIDIA AI Blueprints and Google AI Agents.
  • Experience in ML Engineering and MLOps, including MLflow, model versioning, drift monitoring, and retraining pipelines.
  • Proven ability to deliver complex AI products from ideation through production; track record of driving go-to-market for enterprise AI solutions.
  • Strong software engineering skills in Python, with experience building and integrating AI APIs, microservices, and cloud-native architectures.

Skills & Competencies

  • Deep functional knowledge of Accounts Payable: P2P lifecycle, ERP integrations (SAP S/4HANA, Oracle Fusion, Coupa, Ariba), invoice automation, and supplier management.
  • Experience with NLP and IDP techniques: OCR, entity extraction, document classification, and structured data extraction from unstructured AP documents.
  • Understanding of Graph Databases and Vector Databases (Pinecone, Weaviate, pgvector), and their application to AP knowledge retrieval and semantic search.
  • Experience with cloud AI services: AWS Bedrock / SageMaker, Azure OpenAI, GCP Vertex AI – for both model inferencing and fine-tuning.
  • Strong communication and stakeholder management skills; proven ability to present AI concepts and product roadmaps to C-suite audiences.
  • Experience participating in RFI/RFP responses, thought leadership, and business development in the AI/Finance technology space.
  • People leadership skills; candidate is hands-on technically while managing data scientists, ML engineers, and product managers.
  • Working knowledge of statistical and ML concepts: classification, regression, anomaly detection, and time-series analysis applied to finance data.

Responsibilities

Short Description-

We are seeking a seasoned Sr. AVP – AI Product Experience to own the design, build, and deployment of AI-powered product capabilities for the Accounts Payable domain. The role demands deep technical grounding in Generative AI, Agentic AI, and LLM engineering, combined with strong product leadership to translate AP process complexity into scalable, intelligent software solutions. The incumbent will work closely with engineering, data science, and client-facing teams to define and ship world-class AI experiences on EXL's Finance AI platform.


Description-

KEY RESPONSIBILITIES

Product Vision & Platform Strategy

  • Own end-to-end product vision and multi-year roadmap for AI-powered AP solutions: intelligent invoice processing, three-way matching, supplier onboarding, exception management, and payment orchestration.
  • Define product architecture and feature set for Generative AI and Agentic AI capabilities embedded within AP workflows, ensuring alignment with EXL's Finance AI platform strategy.
  • Participate in deep architectural discussions and design exercises to create world-class AP AI solutions, ensuring they are designed for successful deployment on cloud platforms (AWS, Azure, GCP).
  • Drive build-vs-buy-vs-partner decisions, evaluating AI frameworks and vendor ecosystems against in-house capability development.

Solution Design & AI Architecture

  • Design Generative AI solutions leveraging state-of-the-art models (GPT-4o, Claude, Llama 3) to automate AP-specific tasks such as invoice data extraction, PO matching, and vendor communication.
  • Architect agentic AI workflows for autonomous AP operations: self-healing exception agents, multi-step approval orchestration agents, and real-time supplier query resolution agents.
  • Translate complex AP business requirements into AI architectures, orchestration frameworks (LangChain, LangGraph, AutoGen, CrewAI), and scalable deployment pipelines (MLOps, MLflow).
  • Design NLP and Intelligent Document Processing (IDP) capabilities for structured and unstructured AP documents: invoices, POs, GRNs, contracts, and remittance advices.
  • Ensure AI solutions meet compliance, security, and scalability standards including SOX, GDPR, and enterprise data governance requirements.

Technical Leadership

  • Guide technical teams of data scientists, ML engineers, and software engineers in building, fine-tuning, and deploying LLMs and multimodal AI models for AP use cases.
  • Architect scalable, secure AI pipelines on cloud platforms; drive adoption of deep learning frameworks (PyTorch, TensorFlow) and LLM orchestration stacks (LangChain, LlamaIndex, LangGraph).
  • Stay current on advancements in Generative AI, agentic systems, NLP, and ML engineering; translate emerging trends into product features and competitive differentiation.
  • Drive engineering excellence: code quality standards, MLOps practices, model versioning, and production monitoring across AP AI models.

Client Engagement & Go-to-Market

  • Interact directly with client CTO, CPO, and Finance technology leaders to understand AP pain points, showcase EXL's AI capabilities, and co-create transformation roadmaps.
  • Lead client solutioning during first engagements: define scope, architect proof-of-concepts, and present AI use cases to both technical and business audiences.
  • Author and contribute to EXL customer-facing publications: whitepapers, workshops, demo environments, and proof-of-concept accelerators for AP AI.
  • Represent EXL at industry forums, analyst briefings (Gartner, Forrester), and RFP/RFI responses as the Finance AI product SME.
  • Build deep relationships with senior technical stakeholders at client organizations, enabling them to become AI advocates internally.

Product Management & Delivery

  • Define and maintain a prioritized product backlog with detailed PRDs, user stories, and acceptance criteria aligned to AP domain outcomes.
  • Establish product KPIs: straight-through processing (STP) rates, invoice auto-match accuracy, exception reduction, and cycle time improvements.
  • Capture and share best-practice knowledge across EXL's AI product and solutions architect communities.
  • Mentor a cross-functional team of product managers, solution architects, ML engineers, and finance SMEs.

QUALIFICATIONS

Education & Experience (14+ Years)

  • B.Tech or M.Tech in Computer Science, Software Engineering, Data Science, or related technical discipline.
  • 14–16 years of total experience, with at least 6–8 years in AI/ML product engineering and 8+ years in Finance technology with deep AP/P2P domain ownership.
  • 8+ years of hands-on experience in Generative AI and Large Language Models – finetuning LLMs, prompt engineering, and building with LLM orchestration frameworks (LangChain, LlamaIndex, RAGAS, LangGraph).
  • Hands-on experience with deep learning frameworks (PyTorch, TensorFlow) as evidenced by production deployments or public repositories.
  • Solid understanding of optimization techniques for training deep neural networks, regularization methods, and hyperparameter/fine-tuning for finance-specific models.
  • Strong experience in Agentic AI: Autonomous Agents, AutoGen, CrewAI, LangGraph workflow design; familiarity with NVIDIA AI Blueprints and Google AI Agents.
  • Experience in ML Engineering and MLOps, including MLflow, model versioning, drift monitoring, and retraining pipelines.
  • Proven ability to deliver complex AI products from ideation through production; track record of driving go-to-market for enterprise AI solutions.
  • Strong software engineering skills in Python, with experience building and integrating AI APIs, microservices, and cloud-native architectures.

Skills & Competencies

  • Deep functional knowledge of Accounts Payable: P2P lifecycle, ERP integrations (SAP S/4HANA, Oracle Fusion, Coupa, Ariba), invoice automation, and supplier management.
  • Experience with NLP and IDP techniques: OCR, entity extraction, document classification, and structured data extraction from unstructured AP documents.
  • Understanding of Graph Databases and Vector Databases (Pinecone, Weaviate, pgvector), and their application to AP knowledge retrieval and semantic search.
  • Experience with cloud AI services: AWS Bedrock / SageMaker, Azure OpenAI, GCP Vertex AI – for both model inferencing and fine-tuning.
  • Strong communication and stakeholder management skills; proven ability to present AI concepts and product roadmaps to C-suite audiences.
  • Experience participating in RFI/RFP responses, thought leadership, and business development in the AI/Finance technology space.
  • People leadership skills; candidate is hands-on technically while managing data scientists, ML engineers, and product managers.
  • Working knowledge of statistical and ML concepts: classification, regression, anomaly detection, and time-series analysis applied to finance data.

Qualifications

QUALIFICATIONS

Education & Experience (14+ Years)

  • B.Tech or M.Tech in Computer Science, Software Engineering, Data Science, or related technical discipline.
  • 14–16 years of total experience, with at least 6–8 years in AI/ML product engineering and 8+ years in Finance technology with deep AP/P2P domain ownership.
  • 8+ years of hands-on experience in Generative AI and Large Language Models – finetuning LLMs, prompt engineering, and building with LLM orchestration frameworks (LangChain, LlamaIndex, RAGAS, LangGraph).
  • Hands-on experience with deep learning frameworks (PyTorch, TensorFlow) as evidenced by production deployments or public repositories.
  • Solid understanding of optimization techniques for training deep neural networks, regularization methods, and hyperparameter/fine-tuning for finance-specific models.
  • Strong experience in Agentic AI: Autonomous Agents, AutoGen, CrewAI, LangGraph workflow design; familiarity with NVIDIA AI Blueprints and Google AI Agents.
  • Experience in ML Engineering and MLOps, including MLflow, model versioning, drift monitoring, and retraining pipelines.
  • Proven ability to deliver complex AI products from ideation through production; track record of driving go-to-market for enterprise AI solutions.
  • Strong software engineering skills in Python, with experience building and integrating AI APIs, microservices, and cloud-native architectures.

Skills Required

  • B.Tech or M.Tech in Computer Science, Software Engineering, Data Science, or related technical discipline
  • 14-16 years total experience with 6-8 years in AI/ML product engineering and 8+ years in Finance technology with AP/P2P domain ownership
  • 8+ years hands-on experience with Generative AI and LLMs (fine-tuning LLMs, prompt engineering)
  • Experience with LLM orchestration frameworks: LangChain, LlamaIndex, RAGAS, LangGraph
  • Hands-on deep learning experience with PyTorch and TensorFlow and evidence of production deployments or public repos
  • Experience in Agentic AI / Autonomous Agents and orchestration (AutoGen, CrewAI, LangGraph workflows)
  • Experience in ML Engineering and MLOps including MLflow, model versioning, drift monitoring, and retraining pipelines
  • Strong software engineering skills in Python; building/integrating AI APIs, microservices, cloud-native architectures
  • Experience designing NLP and IDP for invoices and finance documents (OCR, entity extraction, document classification)
  • Deep functional knowledge of Accounts Payable and ERP integrations (SAP S/4HANA, Oracle Fusion, Coupa, Ariba)
  • Experience with vector and graph databases and search (Pinecone, Weaviate, pgvector) for knowledge retrieval
  • Experience with cloud AI services and deployments (AWS Bedrock, SageMaker, Azure OpenAI, GCP Vertex AI)
  • Understanding of compliance and governance requirements (SOX, GDPR) for enterprise AI solutions
  • Proven track record delivering enterprise AI products to production and driving go-to-market for AI solutions
  • Client engagement experience with CTO/CPO/Finance leaders, RFI/RFP participation, and industry thought leadership
  • People leadership and ability to mentor product managers, solution architects, ML engineers, and finance SMEs
  • Familiarity with NVIDIA AI Blueprints and Google AI Agents
  • Working knowledge of statistical and ML concepts: classification, regression, anomaly detection, time-series analysis
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The Company
HQ: New York, NY
30,246 Employees
Year Founded: 1999

What We Do

Choosing a digital partner is about more than capabilities — it’s about collaboration and character. Unrealistic overhauls and off-the-shelf products ignore what matters most — your unique needs, culture, goals, and your legacy data and technology environments. At EXL, our collaboration is built on ongoing listening and learning to adapt our methodologies. We’re your business evolution partner—tailoring solutions that make the most of data to make better business decisions and drive more intelligence into your increasingly digital operations. Whether your goals are scaling the use of AI and digital, redesign operating models, or driving better and faster decisions, we’re here to partner with you to help you gain—and maintain—competitive advantage with efficient, sustainable models at scale. Our expertise in transformation, data science, and change management helps make your business more efficient and effective, improve customer relationships and enhance revenue growth. Instead of focusing on multi-year, resource- and time-intensive platform designs or migrations, we look deeper at your entire value chain to integrate strategies with impact. We use our specialization in analytics, digital interventions, and operations management—alongside deep industry expertise — to deliver solutions that help you outperform the competition. At EXL, it’s all about outcomes—your outcomes—and delivering success on your terms. Share your goals with us and together, we’ll optimize how you leverage data to drive your business forward. For more information, visit www.exlservice.com.

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